Hatada Mika, Saito Satomi, Yonehara Satoshi, Tsugawa Wakako, Asano Ryutaro, Ikebukuro Kazunori, Sode Koji
Department of Biotechnology and Life Science, Graduate School of Engineering, Tokyo University of Agriculture and Technology, 2-24-16 Naka-cho, Koganei, Tokyo, 184-8588, Japan; Joint Department of Biomedical Engineering, The University of North Carolina at Chapel Hill and North Carolina State University, Chapel Hill, NC27599, USA.
Department of Biotechnology and Life Science, Graduate School of Engineering, Tokyo University of Agriculture and Technology, 2-24-16 Naka-cho, Koganei, Tokyo, 184-8588, Japan.
Biosens Bioelectron. 2021 Apr 1;177:112984. doi: 10.1016/j.bios.2021.112984. Epub 2021 Jan 8.
Haemoglobin A1c (hemoglobin A1c, HbA1c) is an important long-term glycemic control marker for diabetes. The aim of this study was to develop an enzyme flow injection analysis (FIA) system using engineered fructosyl peptide oxidase (FPOx) based on 2.5th generation principle for an HbA1c automated analytical system. FPOx from Phaeosphaeria nodorum (PnFPOx) was engineered by introducing a Lys residue at the R414 position, to be modified with amine reactive phenazine ethosulfate (arPES) in proximity of FAD. The engineered PnFPOx mutant with minimized oxidase activity, N56A/R414K, showed quasi-direct electron transfer (quasi-DET) ability after PES-modification. The FIA system was constructed by employing a PES-modified PnFPOx N56A/R414K and operated at 0 V against Ag/AgCl. The system showed reproducible responses with a linear range of 20-500 μM for both fructosyl valine (FV) and fructosyl valylhistidine (FVH), with sensitivities of 0.49 nA μM and 0.13 nA μM, and the detection limits of 1.3 μM and 2.0 μM for FV and FVH, respectively. These results indicate that the enzyme electrochemical FIA system covers the clinical range of HbA1c detection for more 200 consecutive measurements. Protease digested three different levels of HbA1c samples including healthy and diabetic range subjects were also measured with the FIA system. Thus, it will be possible to develop an integrated system consisting of sample pretreatment and sample electrochemical measurement based on an FIA system possessing quasi-DET type PnFPOx.
糖化血红蛋白A1c(血红蛋白A1c,HbA1c)是糖尿病重要的长期血糖控制指标。本研究的目的是基于第二代原理开发一种使用工程化果糖基肽氧化酶(FPOx)的酶流动注射分析(FIA)系统,用于HbA1c自动化分析系统。通过在R414位置引入一个赖氨酸残基对来自小麦条斑病菌的FPOx(PnFPOx)进行工程改造,使其在FAD附近用胺反应性硫酸吩嗪(arPES)进行修饰。具有最小化氧化酶活性的工程化PnFPOx突变体N56A/R414K在PES修饰后表现出准直接电子转移(quasi-DET)能力。通过使用PES修饰的PnFPOx N56A/R414K构建FIA系统,并在相对于Ag/AgCl为零伏的条件下运行。该系统对果糖基缬氨酸(FV)和果糖基缬氨酰组氨酸(FVH)均显示出可重复的响应,线性范围为20 - 500 μM,灵敏度分别为0.49 nA μM和0.13 nA μM,FV和FVH的检测限分别为1.3 μM和2.0 μM。这些结果表明,该酶电化学FIA系统在连续200多次测量中涵盖了HbA1c检测的临床范围。还使用FIA系统对包括健康和糖尿病范围受试者在内的三种不同水平的HbA1c样本进行了蛋白酶消化测量。因此,基于具有准DET型PnFPOx的FIA系统,有可能开发出一种由样品预处理和样品电化学测量组成的集成系统。